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Static response of functionally graded multilayered one-dimensional hexagonal piezoelectric quasicrystal plates using the state vector approach

机译:使用状态向量方法功能梯度多层一维六角形压电拟晶板的静态响应

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摘要

The effect of the non-homogeneity of material properties has been considered the important variation mechanism in the static responses of quasicrystal structures, but the existing theoretical model for it is unable to simulate the material change format beyond the exponential function. In this paper, we create a new model of functionally graded multilayered 1D piezoelectric quasicrystal plates using the state vector approach, in which varying functionally graded electro-elastic properties can be extended from exponential to linear and higher order in the thickness direction. Based on the state equations, an analytical solution for a single plate has been derived, and the result for the corresponding multilayered case is obtained utilizing the propagator matrix method. The present study shows, in particular, that coefficient orders of two varying functions (the power function and the exponential function) of the material gradient provide the ability to tailor the mechanical behaviors in the system's phonon, phason, and electric fields. Moreover, the insensitive points of phonon stress and electric potential under functionally graded effects in the quasicrystal layer are observed. In addition, the influences of stacking sequences and discontinuity of horizontal stress are explored in the simulation by the new model. The results are very useful for the design and understanding of the characterization of functionally graded piezoelectric quasicrystal materials in their applications to multilayered systems.
机译:材料特性非均匀性的效果被认为是拟流结构结构静态响应中的重要变化机制,但现有的理论模型是无法模拟超出指数函数的材料变化格式。在本文中,我们使用状态向量方法创建一个功能渐变多层1D压电拟压电拟压板的新模型,其中可以在厚度方向上从指数延伸到不同的功能梯度的电弹性特性。基于状态等式,已经得出了单板的分析解决方案,利用传播矩阵方法获得相应的多层壳体的结果。本研究特别示出了材料梯度的两个不同函数(功率函数和指数函数)的系数顺序提供了在系统的声音,亚旋合和电场中定制机械行为的能力。此外,观察到在拟rγrate层中功能渐变效应下的声子应力和电位的不敏感点。此外,通过新模型的模拟探讨了堆叠序列和水平应力不连续性的影响。结果对于对多层系统的应用中功能渐变的压电拟CASICARICAL材料的表征的设计和理解非常有用。

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